FIELD OF THE INVENTION
[0001] The present invention relates to a stable pharmaceutical composition comprising an
antibacterial agent, in particular to a composition that is readily dispersible in
bodily fluids. The invention also relates to a process for preparing such a composition
and to a method of treatment and/or prevention of diseases caused by bacterial infection
in a fluid-containing organ such as an udder of a milk-producing animal or an ear,
comprising administration of the composition to the fluid-containing organ.
BACKGROUND OF THE INVENTION
[0002] Mastitis is an inflammation of the mammary gland of milk producing animals, for example
dairy cows, most often caused by bacterial infection. Bacteria enter through the teat
canal of the animal and can cause acute, clinical, or sub-clinical mastitis. Over
135 organisms have been documented as causative pathogens for bovine mastitis. Three
of the major groups of pathogens are gram-positive cocci, gram-negative bacilli, and
gram-positive bacilli. Hygiene, environmental factors, and metabolic disturbances
deriving from high milk yield combine to create conditions favorable to the onset
of mastitis. An increased somatic cell count, associated with mastitis, is positively
correlated with infection and negatively correlated with milk production. Frequently,
an infected cow must be removed from the herd and dried up. Mastitis often affects
a cow during its entire life unless the disease is properly treated, and in extreme
cases an animal may become so severely infected that she dies. Infection rates average
from 10% to 30% of the cows in a typical herd, with losses per cow ranging from $185
to $250 per cow per year. Bovine mastitis is the most economically costly disease
to the dairy industry, with losses estimated at two billion dollars annually in the
United States alone. The majority of these losses are due to reduced milk production.
[0003] Intramammary administration of compositions comprising an antibiotic for prevention
and treatment of mastitis in milk producing animals is well known. Several compositions
suitable for such administration are formulated in aqueous based vehicles.
[0004] For example, British Patent Application No. 2,273,655 discloses compositions for
intramammary use comprising an insoluble antibiotic in an aqueous suspension for treatment
of mastitis.
[0005] International Patent Publication No. WO 95/31180 discloses a composition comprising
the antibiotic cloxacillin benzathine in an aqueous base, and additionally a teat
seal composition, in injectors for intramammary application.
[0006] European Patent Application No. 0 797 988 discloses a veterinary composition in the
form of an aqueous gel containing an antibacterial agent, useful for intramammary
administration for prevention and treatment of mastitis.
[0007] The chemical stability of many antibiotics is, however, severely limited in aqueous
based compositions. Hence, a number of oil based formulations for treatment and/or
prevention of mastitis have also been developed.
[0008] British Patent Application No. 1,456,349 discloses a composition of an anti-mastitis
medicament dispersed in a gelled vehicle comprising a mineral oil or non-drying, semi-drying,
or drying vegetable oil or a mixture thereof, other than a mixture of drying and semi-drying
vegetable oils, and from 0.5% to 5% by weight of a fatty acid ester derived from a
saturated or unsaturated monocarboxylic acid having from 12 to 20 carbon atoms, and
glycerin, propylene glycol, a mono- or dihydric alcohol having from 1 to 12 carbon
atoms, or a polyethylene glycol having a molecular weight of 200 to 6000. Such a composition
is said to provide short milkout times.
[0009] European Patent Application No. 0 058 015 discloses an intramammary formulation comprising
isoxazolyl penicillin and rifampicin in an acceptable carrier.
This formulation is said to substantially eliminate intracellular staphylococci.
[0010] U.S. Patent No. 5,342,612 to Daley
et al. describes a composition comprising a potentiating or safening amount of an aqueous
surfactant in combination with a tumor necrosis factor, wherein the surfactant is
sterol, n-dodecylglucosid, decanoyl n-methylglucamid, dodecyl B-D-maltosid or octanoyl
n-methylglucamid. Such a composition is said to provide an efficacious treatment for
mastitis with minimal milk discard.
[0011] U.S. Patent No. 4,073,920 to Dowrick discloses an intramammary composition comprising
a suspension of a semi-solid synthetic penicillin in an oily vehicle that comprises
triglycerides or propylene glycol diesters of fatty acids containing 8-10 carbon atoms.
Such a composition is said to provide short milkout times and good stability and shelf
life.
[0012] U.S. Patent No. 5,064,815 to Szentmiklosi
et al. relates to a primycin-containing colloidal basic gel comprising 5-30% of primycin
and 95-70% of N-methyl-2-pyrrolidone.
[0013] International Patent Publication No. WO 88/01504 discloses an intramammary infusion
comprising a first dosage unit comprising a pharmaceutically acceptable vehicle and
a substance active against mammary infection, and a second, optional, dosage unit
of active substance, the particles of which are microencapsulated within a membrane
capable of degrading.
[0014] International Patent Publication No. WO 87/03876 discloses a veterinary composition
for treatment of mammary disorders and keratoconjunctivitis comprising benzathine
cephalothin and a veterinarily acceptable carrier.
[0015] British Patent Application No. 2,273,443 discloses a composition for treating mastitis,
comprising an antibacterial and a seal comprising a polyethylene gel.
[0016] British Patent Application No. 2,273,441 discloses a composition for treating mastitis,
comprising an antibacterial and a seal comprising a gel base containing a heavy metal
salt.
[0017] British Patent Application No. 1,089,523 discloses a composition comprising an antibiotic
in a hydrophobic viscous or gel base, and comprising in addition at least 10% by weight
of a solid, finely divided physiologically innocuous non-gelling water soluble compound
of average particle size below 150 microns.
[0018] U.S. Patent No. 4,011,312 to Reuter & Tsuk discloses a prolonged release dosage form
for treatment of mastitis consisting of an antimicrobial agent dispersed in a matrix
of low molecular weight polyesters of glycolic and lactic acids, and shaped as a cylindrical
bougie for insertion into the teat canal.
[0019] British Patent No. 1,589,917 discloses a composition comprising a crystalline sodium
salt of clavulanic acid methyl ether and a pharmaceutically acceptable carrier. High
tissue levels of medicament are said to be produced after administration.
[0020] European Patent Application No. 0 271 306 discloses a method of treating mammary
disorders comprising administering an antibacterial in the form of particles, at least
65% of which have a size in the range 0-5 microns, suspended in a hydrophobic oily
vehicle which comprises an oil and a gelling agent. Prolonged release of medicament
is said to be achieved.
[0021] U.S. Patent No. 4,172,138 to Rhodes discloses an infusion of a limited solubility
penicillin salt in a slow release base, optionally with neomycin.
[0022] U.S. Patent No. 3,636,194 to Parizeau discloses a composition for treating mastitis
by intramammary infusion, comprising an antibiotic, a vegetable oil, an alcohol-soluble
fraction of natural lecithin phospholipid material for promoting dispersion of the
oil in milk, the phospholipid being selected from the group consisting of phosphatidyl
choline and phosphatidyl ethanolamine and mixtures thereof and present in amount of
at least 0.25% in said oil. Such compositions are said to provide rapid dispersion
into milk and short milkout times.
[0023] British Patent Application 1,181,527 discloses a composition for treating mastitis
comprising an active substance and a pharmaceutically acceptable oil base, said composition
containing phospholipid material consisting substantially entirely of alcohol-soluble
material for promoting dispersion of the composition in milk.
[0024] European Patent Application No. 0 222 712 discloses a composition which contains
one or more antimicrobial agents dispersed in an oil consisting of a mixture of triglycerides
of palmitic and stearic acid together with polyoxyethylenated cetyl alcohol and stearyl
alcohol, and held in an oily medium of mineral, vegetable, synthetic or mixed extraction.
Such compositions are said to speed up release of the antimicrobial agent in the udder,
enhancing its biological potential, and reducing milkout time.
[0025] A Labrafil product brochure (Notice OL 0050/5th edition) from Gattefossé Corporation
contains an extract from a thesis by Valette (1957), discussing characteristics of
Labrafil
™ M-1944CS in the ear canal. The same thesis describes an experiment involving injecting
Labrafil
™ M-1944CS mixed with gentian violet into a cow teat. It was shown that Labrafil
™ wetted the entire surface of the mammary parenchyma section and reached the retromammary
ganglion.
[0026] Non-aqueous aerosol mastitis formulations are disclosed in the patents cited individually
below.
[0027] U.S. Patent No. 3,135,658.
[0028] U.S. Patent No, 3,144,386.
[0029] U.S. Patent No. 3,347,743.
[0030] Canadian Patent No. 670,254.
[0031] British Patent No. 980,282.
[0032] In addition, amphipathic oils that are dispersible in water have been utilized in
preparation of a number of pharmaceutical compositions not specifically developed
for intramammary treatment and/or prevention of mastitis.
[0033] European Patent Application No. 0 982 035 discloses an alcohol free transparent solution
which comprises a cyclosporin in a hydrophilic carrier medium comprising propylene
glycol, a transesterification product of a natural vegetable oil triglyceride and
a polyalkylene polyol, a polyoxyethylene hydrogenated castor oil product and triacetin.
[0034] International Patent Publication No. WO 00/48571 discloses a spontaneously dispersible
composition for oral administration comprising N-benzoyl-staurosporine, a surfactant
selected from the group consisting of a polyoxyethylene castor oil, a polyoxyethylene
alkyl ether and a polysorbate and a transesterified ethoxylated vegetable oil as a
co-surfactant.
[0035] U.S. Patent No. 5,314,685 to Tyle
et al. discloses a method of making an anhydrous formulation by preparing an anhydrous
hydrophilic phase comprising at least one hydrophilic vehicle which is solubilizing
at least one lipophilic pharmaceutically active agent, preparing an oily phase comprising
at least one oily component which is partially miscible with the at least one hydrophobic
vehicle and combining the oily phase with the anhydrous hydrophilic phase to form
the anhydrous formulation.
[0036] European Patent No. 0 356 325 discloses a pharmaceutical composition for oral, topical,
or parenteral administration containing a sparingly water-soluble active agent in
an amount as high as 25% and at least one glyceride gelled with at least one cellulose
polymer.
[0037] International Patent Publication No. WO 96/06598 describes pharmaceutical compositions
for aerosol delivery comprising a medicament, a non-chlorofluorocarbon propellant,
and a polyglycolized glyceride or derivative thereof.
[0038] U.S. Patent No. 5,614,491 relates to a liquid preparation for oral and parenteral
administration comprising a cyclosporin, a polyoxyethylene glycol fatty acid monoester,
and a monohydric and/or polyhydric alcohol(s).
[0039] International Patent Publication No. WO 99/61025 discloses microemulsion preconcentrates
with a piperidine substance P antagonist.
[0040] U.S. Patent No. 6,054,136 describes compositions capable of forming a microemulsion,
comprising an active principle, a lipophilic phase consisting of a mixture of fatty
acid esters and glycerides, a surfactant, a cosurfactant, and a hydrophilic phase.
[0041] International Patent Publication No. WO 99/56727 discloses self-emulsifying microemulsion
or emulsion preconcentrate compositions containing a poorly water soluble active agent,
an effective amount of a low HLB oil component, and a surfactant system consisting
essentially of at least one surfactant having an HLB of about 10 to 20, wherein the
composition contains minor amounts or is substantially free of a hydrophilic solvent
system.
[0042] European Patent Application No. 1 004 294 discloses a substantially anhydrous pharmaceutical
composition comprising a nitric oxide donating compound, a mucoadhesive compound,
and an emulsifier capable of forming a microemulsion on addition of water.
[0043] European Patent Application No. 0 265 044 describes (Nva)
2-cyclosporin compositions for treatment of autoimmune diseases.
[0044] U.S. Patent No. 4,388,307 to Cavanak discloses a pharmaceutical composition comprising
an active monocyclic peptide and at least one of the following: a nonionic ester of
a triglyceride and a polyalkylene polyol, a saturated fatty acid triglyceride, and
a mono- or diglyceride having improved physical and absorption properties.
[0045] Two articles by Gao
et al. (1995) in
Pharmaceutical Research 12(6), 857-868, "Controlled release of a contraceptive steroid from biodegradable
and injectable gel formulations:
in vitro evaluation" and "Controlled release of a contraceptive steroid from biodegradable
and injectable gel formulations:
in vivo evaluation", describe preparation of gels containing levonorgestrel, Labrafil
™ M-1944CS, and glyceryl palmitostearate.
[0046] Formulations comprising an antibacterial agent and an anti-inflammatory agent, said
to be suitable for otic administration to treat otic conditions, are disclosed in
the patents and publications cited individually below.
[0047] U.S. Patent Publication No. 2002/142999.
[0048] U.S. Patent No. 6,395,746 to Cagle
et al.
[0049] U.S. Patent No. 6,440,964 to Cagle
et al.
[0050] U.S. Patent No. 6,509,327 to Cagle
et al.
[0051] International Patent Application No. WO 01/89495.
[0052] International Patent Application No. WO 01/89496.
[0053] European Patent No. 0 592 348.
[0054] The most commonly used packaging containers and delivery devices for compositions
intended for intramammary administration to treat and/or prevent mastitis in milk
producing animals as well as for compositions for otic administration to treat ear
infections are constructed of oxygen permeable plastic materials, for example polyethylene,
polypropylene, etc. and mixtures thereof. The use of oxygen permeable packaging containers
and delivery devices for anti-mastitis formulations and for compositions for treatment
and prevention of ear infections, poses serious problems for long term chemical and/or
physical stability of compositions comprising an ingredient, for example an active
medicament or an excipient, that is prone to oxidative degradation.
[0055] Although the references cited above disclose a number of compositions for treatment
of mastitis and other disease conditions, none addresses the problem of providing
extended chemical and/or physical stability of compositions packaged in oxygen permeable
containers, where the composition comprises a pharmaceutically active substance that
is prone to oxidative degradation. Despite the above teachings, there still exists
a need in the art for pharmaceutical compositions having one or more of the following
advantages over prior art compositions used in treatment and prevention of mastitis
by intramammary infusion: (a) extended chemical and/or physical stability even when
packaged in oxygen permeable containers and delivery devices, particularly where the
composition comprises a pharmaceutically active substance that is prone to oxidative
degradation, (b) efficacy against a wide variety of infectious organisms, (c) rapid
dispersibility in milk and in udder fluids to achieve efficacious medicament levels
at sites of infection, (d) short milkout times for lactating cows, (e) zero day slaughter
meat withdrawal period, (f) short milk withholding times post calving after dry cow
treatment, and (g) minimal to no irritation after administration.
SUMMARY OF THE INVENTION
[0056] Novel pharmaceutical compositions having some or all of the advantageous attributes
described above have now been developed. Accordingly, there is provided a pharmaceutical
composition comprising a vehicle that comprises (a) an amphipathic oil that is water
dispersible and ethanol insoluble, (b) microcrystalline wax, and (c) a pharmaceutically
acceptable non-aqueous carrier; said vehicle having stably dispersed therein an antibacterial
substance in an antibacterially effective amount.
[0057] In one embodiment the antibacterial substance is prone to oxidative degradation,
and the composition exhibits extended chemical and/or physical stability when packaged
in an oxygen permeable container or delivery device. Such a composition can, for example,
be administered by intramammary infusion for treatment and/or prevention of mastitis
or other diseases of the udder in a milk-producing animal, and is efficacious against
a wide variety of infectious organisms.
[0058] The novel anti-mastitis composition has a low interfacial tension in aqueous fluids,
thereby increasing dispersibility of the composition in milk and udder fluids, as
compared to a conventional oil based formulation. This results in rapid distribution
of the composition throughout the udder and thereby allows the antibacterial substance
to reach infected tissue quickly, providing an efficacious level of the antibacterial
substance at a site of infection. The interfacial tension of a composition in an aqueous
fluid determines the energy needed for dispersion and spreading of the composition
in the fluid, as well as the energy necessary for a suspended particle in the composition
to cross the oil/milk or oil/udder fluid interfacial boundary.
[0059] Preferably the composition is one that produces suitably short milkout times. Milkout
time for a lactating cow is the period of time from administration of a mastitis treatment
to resumption of production of saleable milk. Following administration of a composition,
the concentration of active substance in milk must be reduced to a level acceptable
to health organizations before the milk is deemed suitable for human consumption.
A suitably short milkout time reduces monetary losses to a dairy farmer caused by
a mastitis outbreak.
[0060] Preferably the composition is one that provides a low milk withholding time post
calving after dry cow treatment, with no antibiotic residues in the offspring.
[0061] Preferably the composition is one that provides a zero day slaughter meat withdrawal
period. This attribute is especially important since it allows a farmer to dispose
of a treated cow at any time it is financially advantageous, rather than being required
to keep and feed a cow for a specified amount of time after its mastitis treatment.
[0062] A composition of the invention can alternatively or in addition be useful for treatment
and/or prevention of an infection of the ear, for which purpose it can be administered
by infusion into the ear canal of a human, companion animal, horse, livestock, or
the like. Such a composition is efficacious against a wide variety of infectious organisms.
[0063] Thus a pharmaceutical composition as described above is provided for treatment and/or
prevention of an ear infection, the composition having a low interfacial tension in
an aqueous fluid, thereby increasing the dispersibility of the composition in the
waxy moist environment of an ear, as compared to a conventional composition. The resulting
rapid distribution of the composition throughout mucous membranes and lipid containing
wax of the ear canal allows the antibacterial substance to reach infected tissue quickly,
providing an efficacious level of the antibacterial substance at the site of infection.
Such a pharmaceutical composition also produces a protective coating for inflamed
mucous membranes of the ear.
[0064] Preferably such a composition helps to dissolve wax deposits in the ear, thus permitting
better penetration of the antibacterial substance.
[0065] Preferably a composition of the invention has improved physical stability when compared
to conventional oil and aqueous compositions, for example by virtue of improved composition
resuspendability. A composition of the invention has been shown to cause flocculation
of certain drugs, thereby improving resuspendability and eliminating the problem of
suspension caking and possible delivery of a subpotent or non-efficacious dose.
[0066] Preferably a composition of the invention produces minimal to no irritation after
administration.
[0067] A process is provided for preparing a pharmaceutical composition of the invention.
The process comprises mixing, in any suitable order, an amphipathic oil that is water
dispersible and ethanol insoluble, microcrystalline wax, a pharmaceutically acceptable
non-aqueous carrier, and an antibacterial substance to provide a composition having
extended chemical and/or physical stability as described herein.
[0068] Also provided is a therapeutic method of treatment or prevention of a bacterial infection
in a subject, the method comprising administration of a composition as described herein
to a fluid-containing organ of the subject via a natural exterior orifice of the organ,
wherein upon such administration the composition disperses in the fluid. For example,
the organ can be an udder of a milk-producing animal, in which case administration
is by infusion or injection via a teat canal. Alternatively, the organ can be an ear,
in which case administration is by infusion or injection via the external auditory
meatus of the ear.
[0069] Accordingly, in one embodiment a method is provided for treatment and/or prevention
of an infectious disease of an udder, for example mastitis, in a milk producing animal,
the method comprising intramammary infusion of a composition as provided herein.
[0070] More particularly, a method is provided for effecting targeted delivery of an antibacterial
substance to a site of mastitis infection in a milk producing animal, the method comprising
intramammary administration of a composition as provided herein, for example by infusion
or injection, to the udder of the animal.
[0071] In another embodiment a method is provided for treatment and/or prevention of an
infectious disease of an ear in a subject, the method comprising infusion or injection
of a composition as provided herein into the ear.
[0072] More particularly, a method is provided for effecting targeted delivery of an antibacterial
substance to a site of an ear infection in a subject, the method comprising infusion
or injection of a composition as provided herein into the ear of the subject.
[0073] The present invention provides solutions to several long-standing problems in the
art and possesses one or more advantages over compositions of prior art. Other features,
advantages and benefits of the invention will be apparent from the description that
follows.
DETAILED DESCRIPTION OF THE INVENTION
[0074] The invention provides a pharmaceutical composition comprising a vehicle that comprises
an amphipathic oil that is water dispersible and ethanol insoluble, microcrystalline
wax, and a pharmaceutically acceptable non-aqueous carrier; said vehicle having stably
dispersed therein an antibacterial substance in an antibacterially effective amount.
The term "ethanol insoluble" means that the amphipathic oil is essentially insoluble
in ethanol at 20°C.
[0075] In a particular embodiment of the invention the antibacterial substance is prone
to oxidative degradation. According to this embodiment, the composition exhibits extended
chemical and/or physical stability even when packaged in an oxygen permeable container
or delivery device. The term "extended chemical and/or physical stability" herein
means that a composition of the invention has greater chemical and/or physical stability
than a reference composition comprising the same antibacterial substance at the same
concentration. A "reference composition" in the present context means a composition
lacking one or both of the amphipathic oil and the microcrystalline wax, but otherwise
similar to the composition of the invention.
[0076] Oxygen permeable containers or delivery devices can be made of any suitable thermoplastic
material including, but not limited to, polymers and copolymers of polystyrene, polyacrylonitrile,
polyvinyl chloride, and particularly polyolefins. Polyolefins include, for example,
polyethylene, polypropylene, polybutenes, polyisoprenes, polypentenes, copolymers
thereof, and the like, and mixtures thereof.
[0077] Compositions for intramammary administration are commonly packaged in syringes that
are provided with a cannula nozzle for insertion into the teat to allow extrusion
directly into the mammary gland via the streak canal. Intramammary suspension formulations
are generally prepared in thickened vehicles to prevent settling of drug particles
into the cannula nozzle, which can cause nozzle plugging resulting in incomplete expulsion
of the composition.
[0078] Cephalosporins are a class of antibacterial substance, many of which have a broad
spectrum of activity against both gram positive and gram negative bacteria.
[0079] In an early effort to develop an intramammary suspension of the cephalosporin ceftiofur,
12.5 mg/ml ceftiofur hydrochloride was suspended in a thickened vehicle comprising
20 mg/ml glyceryl monostearate in peanut oil. Although clinically efficacious, the
potency of this composition fell to below 90% of label after storage for less than
18 months at room temperature when packaged in polyethylene syringes. Oxidative degradation
of ceftiofur hydrochloride was determined to be the primary cause of this potency
decline. A room temperature shelf life wherein at least 90% of label potency is retained
for a minimum of 24 months is desired for an intramammary suspension.
[0080] A number of ceftiofur hydrochloride suspension compositions were then prepared in
a variety of thickened vehicles and packaged in oxygen permeable polyethylene syringes.
Ceftiofur hydrochloride formulations at a concentration of 12.5 mg/ml were manufactured.
All vehicles were based on cottonseed oil, with the following additional components:
- (1) 50 mg/ml microcrystalline wax.
- (2) 70 mg/ml microcrystalline wax + 1.0 mg/ml propyl gallate.
- (3) 100 mg/ml microcrystalline wax + 50 mg/ml Labrafil™ M-1944CS.
- (4) 40 mg/ml Gelucire™ 62/05 + 10 mg/ml Gelucire™ 33/01.
- (5) 70 mg/ml Lexemul™ AR.
- (6) 2.5 mg/ml Coagulan™ GP-1.
- (7) 10 mg/ml microcrystalline wax + 5 mg/ml Hydrofol Glycerides™ T 57L.
- (8) 30 mg/ml Drewpol™ 10-10-S.
- (9) 15 mg/ml beeswax blend.
- (10) 60 mg/ml Drewpol™ 10-10-S.
- (11) 10 mg/ml beeswax blend + 50 mg/ml Labrafil™ M-1944CS.
- (12) 100 mg/ml microcrystalline wax + 1.0 mg/ml propyl gallate.
- (13) 70 mg/ml microcrystalline wax + 100 mg/ml Labrafil™ M-1944CS.
- (14) 70 mg/ml microcrystalline wax + 100 mg/ml Labrafil™ M-1944CS + 0.2 mg/ml butylated hydroxytoluene.
- (15) 70 mg/ml microcrystalline wax + 50 mg/ml Labrafil™ M-1944CS + 1.0 mg/ml propyl gallate.
- (16) 70 mg/ml microcrystalline wax + 50 mg/ml Labrafil™ M-1944CS + 0.2 mg/ml butylated hydroxytoluene.
- (17) 50 mg/ml microcrystalline wax + 1.0 mg/ml propyl gallate.
- (18) 100 mg/ml microcrystalline wax + 100 mg/ml Labrafil™ M-1944CS + 1.0 mg/ml propyl gallate.
- (19) 100 mg/ml microcrystalline wax + 100 mg/ml Labrafil™ M-1944CS + 0.2 mg/ml butylated hydroxytoluene.
- (20) 100 mg/ml microcrystalline wax + 50 mg/ml Labrafil™ M-1944CS + 1.0 mg/ml propyl gallate.
- (21) 100 mg/ml microcrystalline wax + 50 mg/ml Labrafil™ M-1944CS + 0.2 mg/ml butylated hydroxytoluene.
- (22) 50 mg/ml microcrystalline wax + 100 mg/ml Labrafil™ M-1944CS + 0.2 mg/ml butylated hydroxytoluene.
[0081] Labrafil
™ M-1944CS is an amphipathic oil that is dispersible in water and is essentially insoluble
in ethanol at 20°C. Gelucire
™ 62/05 and Gelucire
™ 33/01 are essentially inert excipients derived from natural hydrogenated food grade
fats and oils. Lexemul
™ AR is an acid stable cationic, self emulsifying glyceryl monostearate. "Beeswax blend"
refers to a blend containing white beeswax, carnauba wax and candelilla wax. Coagulan
™ GP-1 is N-acyl glutamic acid diamide, an amino acid gelatinization agent for oil.
Drewpol
™ is a modified glyceride.
[0082] Most surprisingly, it was discovered that after 24 months storage at room temperature
in oxygen permeable polyethylene syringes, only those ceftiofur hydrochloride compositions
comprising both Labrafil
™ M-1944CS and microcrystalline wax provided formulations that maintained at least
90% of label potency. Estimated room temperature shelf lives for the ceftiofur hydrochloride
formulations comprising both Labrafil
™ M-1944CS and microcrystalline wax in cottonseed oil were 2.4 to 3.7 times greater
than estimated room temperature shelf lives of comparable formulations which did not
contain Labrafil
™ M-1944CS. Additionally, while a ceftiofur hydrochloride composition comprising Labrafil
™ M-1944CS and beeswax blend in cottonseed oil, stored at room temperature, had a potency
of less than 90% after storage for 24 months in oxygen permeable polyethylene syringes
at room temperature, a ceftiofur hydrochloride formulation of comparable viscosity
comprising Labrafil
™ M-1944CS and microcrystalline wax in cottonseed oil exhibited a potency of greater
than 90% of label after 24 months in the same storage conditions.
[0083] Compositions comprising a cephalosporin, an amphipathic oil that is water dispersible
and ethanol insoluble, microcrystalline wax, and a non-aqueous carrier, in addition
to providing extended chemical and/or physical stability, also provide efficacy against
a wide variety of infectious organisms, rapid dispersion of the composition in milk
and in udder fluids to achieve efficacious medicament levels at the site of infection,
short milkout times for lactating cows, a zero day slaughter meat withdrawal period,
short milk withholding times post calving after dry cow treatment, and minimal to
no irritation after administration.
[0084] Antibacterial substances applicable to the current invention include any such substances
that are effective for treatment and/or prevention of mammary disorders and/or infections
of the ear. Suitable antibacterial substances include, but are not limited to, beta-lactam
antibacterials such as penicillins, synthetic penicillins, cephalosporins, macrolides
(such as tylosin, tilmicosin, aivlosin, erythromycin, azithromycin, spiramycin, josamycin,
kitasamycin, and the like), lincosamides (such as lincomycin, clindamycin, primycin,
and the like), pleuromutilins (such as tiamulin, valnemulin, and the like), penam
penicillins (such as benzyl penicillin, phenoxymethyl penicillin, coxacillin, nafcillin,
methicillin, oxacillin, amoxycillin, temocillin, ticarcillin, and the like), polypeptides,
penicillinase-stable penicillins, acylamino and caroxypenicillins (such as piperacillin,
azlocillin, mezlocillin, carbenicillin, temocillin, ticarcillin, and the like), broader
spectrum penicillins (such as streptomycin, neomycin, framycetin, genatamicin, apramycin,
amikacin, spectinomycin, amoxycillin, ampicillin, and the like), polymixins (such
as polymixin B, polymixin E, and the like), sulfonamides (such as sulfamethazine,
sulfadiazine, sulfamethoxypyridazine, sulfatroxazole, and the like, alone or in combination
with trimethoprim), chloramphenicol, thiamphenicol, florfenicol, tetracyclines and
derivatives thereof (such as tetracycline, chlortetracycline, oxytetracycline, doxycycline,
minocycline, and the like), quinolones, fluoroquinolones, tiamulin, ciprofloxacin,
colistin, domeclocycline, mafenide, methacycline, norfloxacin, ofloxacin, pyrimethamine,
silver sulfadiazine, sulfacetamide, sulfisoxazole, tobramycin, vanemulin, oxazolidinones
(such as (S)-N-((3-(3-fluoro-4-(4-(hydroxyacetyl)-1-piperazinyl)phenyl)-2-oxo-5-oxazolidinyl)
methyl)acetamide (eperezolid), (S)-N-((3-(3-fluoro-4-(4-(morpholinyl) phenyl)-2-oxo-5-oxazolidinyl)methyl)acetamide
(linezolid), N-((5S)-3-(3-fluoro-4-(4-(2-fluoroethyl)-3-oxy-1-piperazinyl)phenyl-2-oxy-5-oxazolidinyl)methyl)acetamide,
(S)-N-((3-(5-(3-pyridyl)thiophen-2-yl)-2-oxy-5-oxazolidinyl)methyl)acetamide, (S)-N-((3-(5-(4-pyridyl)pyrid-2-yl)-2-oxy-5-oxazolidinyl)methyl)acetamide
hydrochloride, and the like), aminoglycosides and aminocyclitols, amphenicol, ansamycin,
carbaphenem, cephamycin, vancomycin, monobactam, oxacephem, systemic antibacterials
(such as 2,4-diaminopyrimidine), nitrofuran sulfones, marbofloxacin, and the like,
and combinations thereof.
[0085] It should be understood that any reference herein to a particular drug compound includes
tautomers, stereoisomers, enantiomers, salts, hydrates, and prodrugs of that compound
and is not specific to any one solid state form of the drug.
[0086] Preferred antibacterial agents of the current invention are cephalosporins including,
but not limited to, ceftiofur hydrochloride, ceftiofur crystalline free acid, ceftiofur
sodium, other ceftiofur salts, cephalexin, cephradine, cefquinome, cephacetrile, cephalonium,
cefuroxime, cefazidime, cefoperazone, crystalline sodium cephemethcarboxylate, crystalline
cephem heptahydrate, crystalline cephalosporin di- or tri-hydrate, cephadroxil monohydrate,
cephazolin sodium monohydrate, cefiximine, ceftaxime, ceftizoxime, ceftriaxone, crystalline
o-formylcefamandole, salts of 3-acetoxymethyl-7-(iminocetamido)-cephalosporanic acid
derivatives, crystalline monohydrate of 7-(D-alpha-amino-alpha-(p-hydroxyphenyl)acetamino)-3-methyl-3-cephem-1-carboxylic
acid, crystalline hydrochloride salt of syn-7-((2-amino-1-thiazolyl)(methoxyimino)acetyl)amino)-3-methyl-3-cephem-4-carboxylic
acid, crystalline cephem acid addition salts, crystalline (pivaloyloxy)methyl 7-beta-(2-(2-amino-4-thiazolyl)acetamido)-3-(((1-(2-(dimethylamino)ethyl)-1H-tetraazol-5-yl)thio)methyl)-3-cephem-4-carboxylate,
crystalline cephalexin, crystalline cephalexin monohydrate, crystalline 7-(D-2-naphthyglycylamino)-3-methyl-3-cephem-4-carboxylic
acid tetrahydrate, and the like. Examples of cephalosporin antibiotic compounds are
disclosed in the patents and publications listed below.
[0087] U.S. Patent No. 3,531,481 to Pfeiffer.
[0088] U.S. Patent No. 4,006,138 to Yang.
[0089] U.S. Patent No. 4,104,470 to Cise & Osborne.
[0090] U.S. Patent No. 4,298,732 to Stables.
[0091] U.S. Patent No. 4,318,852 to Heitman
et al.
[0092] U.S. Patent No. 4,400,503 to Yang.
[0093] U.S. Patent No. 4,442,101 to Ichihashi
et al.
[0094] U.S. Patent No. 4,464,367 to Labeeuw & Montpellier.
[0095] U.S. Patent No. 4,474,780 to Daugherty.
[0096] U.S. Patent No. 4,504,657 to Bouzard
et al.
[0097] U.S. Patent No. 4,555,404 to Nishihata
et al.
[0098] U.S. Patent No. 4,616,080 to Chou & Lakin.
[0099] U.S. Patent No. 4,624,948 to Durckheimer.
[0100] U.S. Patent No. 4,692,519 to Naito
et al.
[0101] U.S. Patent No. 4,812,561 to Hamashima
et al.
[0102] U.S. Patent No. 4,820,833 to Crisp
et al.
[0103] U.S. Patent No. 4,877,782 to Cazers & Koshy.
[0104] U.S. Patent No. 4,898,938 to Marsili.
[0105] U.S. Patent No. 4,902,683 to Amin & Campbell.
[0106] U.S. Patent No. 4,912,211 to Bonfanti.
[0107] U.S. Patent No. 4,912,212 to Ochiai
et al.
[0108] U.S. Patent No. 4,933,443 to Hamashima
et al.
[0109] U.S. Patent No. 4.937,330 to Sacks
et al.
[0110] U.S. Patent No. 4,973,684 to Ochiai
et al.
[0111] U.S. Patent No. 5,017,380 to Hamashima
et al.
[0112] U.S. Patent No. 5,079,007 to Putman.
[0113] U.S. Patent No. 5,103,012 to Heymes & Lutz.
[0114] U.S. Patent No. 5,143,137 to Cazers
et al.
[0115] U.S. Patent No. 5,721,359 to Dunn
et al.
[0116] U.S. Patent No. 5,736,151 to Foster & Kiefer.
[0117] European Patent No. 0 278 656.
[0118] Canadian Patent Application No. 2,018,794.
[0119] Chemical Abstracts 84:184895j (1976).
[0120] Chemical Abstracts 97:38761q (1982).
[0121] Chemical Abstracts 110:212490z (1989).
[0122] The most preferred cephalosporins for use according to the present invention are
ceftiofur and pharmaceutically acceptable salts thereof.
[0123] Where the antibiotic is ceftiofur or a pharmaceutically acceptable salt thereof,
a preferred concentration range in a composition of the invention is about 1 to about
1000 mg/ml, more preferably about 5 to about 750 mg/ml, and still more preferably
about 10 to about 100 mg/ml. For antibacterials other than ceftiofur, suitable concentration
ranges that are antibacterially equivalent can be determined by one of skill in the
art based upon published data.
[0124] The term "amphipathic oil" is defined as a substance with a distinctly polar region
and a distinctly non-polar region. Structurally these two regions of the amphipathic
oil are sufficiently far apart that the unique properties of the two regions are distinctly
separate.
[0125] Amphipathic oils applicable to the current invention include all amphipathic oils
that are water dispersible and ethanol insoluble.
[0126] Preferred such amphipathic oils are polyglycolized glycerides prepared by an alcoholosis
reaction of natural triglycerides with polyethylene glycols, and examples include,
but are not limited to, the following Gattefossé oils or substantially equivalent
oils from another manufacturer: Labrafil
™ M-1944CS, Labrafil
™ M-1966CS, Labrafil
™ M-1969CS, Labrafil
™ M-1980CS, Labrafil
™ M-2125CS, Labrafil
™ WL-2609BS, Labrafil
™ ISO, and combinations thereof.
[0127] Still more preferred amphipathic oils are polyglycolized glycerides prepared as above,
comprising a main fatty acid component of either oleic acid or linoleic acid, and
examples include, but are not limited to, the following Gattefossé oils or substantially
equivalent oils from another manufacturer: Labrafil
™ M-1944CS, Labrafil
™ M-1966CS, Labrafil
™ M-1969CS, Labrafil
™ M-1980CS, Labrafil
™ M-2125CS, Labrafil
™ WL-2609BS, and combinations thereof.
[0128] Still more preferred amphipathic oils are polyglycolized glycerides prepared as above,
comprising a main fatty acid component of oleic acid, and examples include, but are
not limited to, the following Gattefossé oils or substantially equivalent oils from
another manufacturer: Labrafil
™ M-1944CS, Labrafil
™ M-1966CS, Labrafil
™ M-1980CS, and combinations thereof.
[0129] The most preferred amphipathic oil is pegicol 5-oleate, for example Labrafil
™ M-1944CS of Gattfossé Corporation.
[0130] A preferred concentration range for the amphipathic oil in a composition of the invention
is about 0.01% to about 99% weight/volume, more preferably about 1% to about 80% weight/volume,
and still more preferably about 3% to about 25% weight/volume.
[0131] Microcrystalline wax is as defined for example in
Handbook of Pharmaceutical Excipients, 3rd ed. or in
National Formulary, 19th ed. (NF 19) and can be obtained from a number of manufacturers including Witco
Corporation.
[0132] A preferred concentration range for microcrystalline wax in a composition of the
invention is about 0.01% to about 50% weight/volume, more preferably about 1% to about
40% weight/volume, and still more preferably about 3% to about 15% weight/volume.
[0133] Pharmaceutically acceptable non-aqueous carriers of the invention can be fully saturated,
or partially or fully unsaturated. Examples of non-aqueous carriers include, but are
not limited to, vegetable oils (such as cottonseed oil, corn oil, sesame oil, soybean
oil, olive oil, fractionated coconut oils, peanut oil, sunflower oil, safflower oil,
almond oil, avocado oil, palm oil, palm kernel oil, babassu oil, beechnut oil, linseed
oil, rape oil, and the like), mineral oils, synthetic oils, and combinations thereof.
Examples of fully saturated non-aqueous carriers include, but are not limited to,
esters of medium to large chain fatty acids (such as fatty acid triglycerides with
a chain length of about C
6 to about C
24). Mixtures of fatty acids are split from the natural oil (for example coconut oil
palm kernel oil, babassu oil, or the like) and are refined. In some embodiments, about
C
8 to about C
12 fatty acid medium chain triglycerides are useful. An illustrative saturated non-aqueous
carrier comprises capric acid (about 20% to about 45% by weight of the carrier) and
caprylic acid (about 45% to about 80% by weight of the carrier). Other fully saturated
non-aqueous carriers include, but are not limited to, saturated coconut oil (which
typically includes a mixture of lauric, myristic, palmitic, capric and capric acids),
including those sold under the Miglyol™ trademark from Huls and bearing trade designations
810, 812, 829, and 840). Also noted are the NeoBee
™ products sold by Drew Chemicals. Isopropyl myristate is another example of a non-aqueous
carrier useful in compositions of the invention. Examples of synthetic oils include
triglycerides, and propylene glycol diesters of saturated or unsaturated fatty acids
having from 6 to 24 carbon atoms such as, for example hexanoic acid, octanoic (caprylic),
nonanoic (pelargonic), decanoic (capric), undecanoic, lauric, tridecanoic, tetradecanoic
(myristic), pentadecanoic, hexadecanoic (palmitic), heptadecanoic, octadecanoic (stearic),
nonadecanoic, heptadecanoic, eicosanoic, heneicosanoic, docosanoic, and lignoceric
acids, and the like. Examples of unsaturated carboxylic acids include oleic, linoleic,
and linolenic acids, and the like. It is understood that the non-aqueous carrier can
comprise the mono-, di-, and triglyceryl esters of fatty acids or mixed glycerides
and/or propylene glycol diesters wherein at least one molecule of glycerol has been
esterified with fatty acids of varying carbon atom length. A non-limiting example
of a "non-oil" of the present invention is polyethylene glycol.
[0134] Preferred non-aqueous carriers are selected from the group consisting of cottonseed
oil, corn oil, peanut oil, sesame oil, soybean oil, olive oil, sunflower oil, safflower
oil, almond oil, avocado oil, palm oil, palm kernel oil, babassu oil, beechnut oil,
linseed oil, rape oil, and fractionated coconut oil.
[0135] The most preferred non-aqueous carrier is cottonseed oil. By way of example cottonseed
oil is available in a preparation of 70% unsaturated fatty acids from Sigma Chemical
Co.
[0136] A preferred concentration range for the non-aqueous carrier in a composition of the
invention is about 0.5% to about 99% weight/volume, more preferably about 10% to about
95% weight/volume, and still more preferably about 40% to about 90% weight/volume.
[0137] A composition of the invention can be admixed with any conventional pharmaceutical
additive which does not deleteriously react with the composition, including, but not
limited to, antioxidants, preservatives, stabilizers, wetting agents, lubricants,
emulsifiers, salts for influencing osmotic pressure, coloring agents, alcohols, buffering
agents, other conventional pharmaceutical additives, and combinations thereof. Examples
include, but are not limited to, tocopherols, ascorbyl palmitate, butyl hydroxyanisole,
butyl hydroxytoluene, benzoic acid, benzoic acid derivatives, ethylenediamine, sodium
bisulfite, sulfur dioxide, maleic acid, propyl gallate, magnesium stearate, talc,
silicic acid, carbohydrates (such as lactose, amylose, and starch), and combinations
thereof.
[0138] Methods of administration of a composition of the invention are described herein
as involving "infusion" or an "infusing" step. The terms "infusion" and "infusing"
herein refer to a process of delivering a liquid composition directly into a fluid-containing
organ, and encompass injection, for example using a syringe, that is completed within
a very short space of time as well as more prolonged delivery.
[0139] A composition of the invention can be administered for treatment or prevention of
mastitis by inserting the cannula nozzle of a mastitis syringe into the external orifice
of the streak canal of an udder of a milk producing animal and infusing the composition
into the udder.
[0140] A composition of the invention can be administered for treatment or prevention of
an ear infection by inserting the nozzle of an ear syringe, otic drop dispenser, or
other appropriate otic delivery device into the external auditory canal of the ear
of a subject and infusing the composition into the ear.
[0141] It will be appreciated that the preferred amounts of compositions to be administered
in a specific case will vary according to the specific composition being utilized,
the mode of application, the particular situs and organism being treated, and other
factors. Dosages for a given purpose can be determined using conventional considerations,
for example, by customary comparison of the differential activities of the subject
compositions and of a known agent,
e.g., by means of an appropriate conventional pharmaceutical protocol.
[0142] An illustrative suspension of the invention containing as the antibacterial substance
ceftiofur hydrochloride has the following composition:
| antibacterial substance |
1-1000 mg/ml |
| Labrafil™ M-1944CS |
0.01-99% |
| microcrystalline wax |
0.01-50% |
| cottonseed oil |
0.5-99% |
| (all percentages are weight/volume). |
EXAMPLES
[0143] The following examples illustrate aspects of the present invention.
Example 1
[0144] A suspension to be administered by intramammary infusion for treatment and/or prevention
of lactating cow mastitis was prepared having the following composition:
| ceftiofur hydrochloride (micronized) |
12.5 mg/ml |
| Labrafil™ M-1944CS |
50 mg/ml |
| microcrystalline wax NF |
70 mg/ml |
| cottonseed oil NF |
q.s. |
[0145] The microcrystalline wax and approximately 27% of the total amount of the cottonseed
oil were heated to 85-98°C with mixing, in a kettle. The balance of the cottonseed
oil was heated to 85-98°C with mixing, in a manufacturing tank. After the microcrystalline
wax was completely melted the microcrystalline wax/cottonseed oil mixture in the kettle
was transferred to the manufacturing tank containing cottonseed oil and mixed thoroughly.
The resulting mixture was cooled to 38-45°C and the Labrafil
™ M-1944CS was added to the manufacturing tank with mixing to form a vehicle. The ceftiofur
hydrochloride was then added to the vehicle and the resulting composition was mixed
to form a uniform suspension. The suspension was screened and filled into 12 ml high
density polyethylene mastitis syringes. The packaged product was terminally sterilized
by gamma irradiation at a dose of 25-40 kGy.
[0146] The interfacial tension of the above suspension was determined using the drop volume
technique by comparison with that of a reference suspension prepared with 70 mg/ml
microcrystalline wax in cottonseed oil but without Labrafil
™ M-1944CS. The interfacial tension of the suspension containing both Labrafil
™ M-1944Cs and microcrystalline wax in cottonseed oil was 3.4 times lower than that
of the reference suspension.
Example 2
[0147] A suspension to be administered by intramammary infusion for treatment and/or prevention
of lactating cow mastitis was prepared having the following composition:
| ceftiofur hydrochloride (micronized) |
12.5 mg/ml |
| Labrafil™ M-1944CS |
50 mg/ml |
| microcrystalline wax NF |
100 mg/ml |
| cottonseed oil NF |
q.s. |
[0148] The microcrystalline wax and cottonseed oil were heated to 85-98°C with mixing, in
a manufacturing tank. After the microcrystalline wax was completely melted the mixture
was cooled to 38-45°C and the Labrafil
™ M-1944CS was added to the manufacturing tank with mixing. Ceftiofur hydrochloride
was then added to the resulting vehicle and mixed to form a uniform suspension. The
suspension was screened and filled into 12 ml high density polyethylene mastitis syringes.
The packaged product was terminally sterilized by gamma irradiation at a dose of 25-40
kGy.
[0149] The interfacial tension of the above suspension was determined using the drop volume
technique by comparison with that of a reference suspension prepared with 100 mg/ml
microcrystalline wax in cottonseed oil but without Labrafil
™ M-1944CS. The interfacial tension of the suspension containing both Labrafil
™ M-1944Cs and microcrystalline wax in cottonseed oil was 4.0 times lower than that
of the reference suspension.
Example 3
[0150] A suspension to be administered by intramammary infusion for treatment and/or prevention
of lactating cow mastitis was prepared having the following composition:
| ceftiofur hydrochloride (micronized) |
12.5 mg/ml |
| Labrafil™ M-1944CS |
200 mg/ml |
| microcrystalline wax NF |
100 mg/ml |
| cottonseed oil NF |
q.s. |
[0151] The microcrystalline wax and cottonseed oil were heated to 85-98°C with mixing, in
a manufacturing tank. After the microcrystalline wax was completely melted the mixture
was cooled to 38-45°C and Labrafil
™ M-1944CS was added to the manufacturing tank with mixing. The ceftiofur hydrochloride
was then added to the resulting vehicle and mixed to form a uniform suspension. The
suspension was screened and filled into 12 ml high density polyethylene mastitis syringes.
The packaged product was terminally sterilized by gamma irradiation at a dose of 25-40
kGy.
[0152] The interfacial tension of the above suspension was determined using the drop volume
technique by comparison with that of a reference suspension prepared with 100 mg/ml
microcrystalline wax in cottonseed oil but without Labrafil
™ M-1944CS. The interfacial tension of the suspension containing both Labrafil
™ M-1944CS and microcrystalline wax in cottonseed oil was more than 28 times lower
than that of the reference suspension.
Example 4
[0153] A suspension to be administered by intramammary infusion for treatment and/or prevention
of lactating and dry cow mastitis is prepared having the following composition:
| ceftiofur crystalline free acid (micronized) |
25.0 mg/ml |
| Labrafil™ M-1966CS |
100 mg/ml |
| microcrystalline wax NF |
50 mg/ml |
| corn oil NF |
q.s. |
[0154] The microcrystalline wax and the corn oil are heated to 85-98°C with mixing, in a
manufacturing tank. After the microcrystalline wax is completely melted, the mixture
is cooled to 30-45°C and the Labrafil
™ M-1966CS is added to the manufacturing tank with mixing. The ceftiofur crystalline
free acid is added to the vehicle and mixed to form a uniform suspension. The suspension
is screened and filled into 12 ml high density polyethylene mastitis syringes. The
packaged product is terminally sterilized by gamma irradiation at a dose of 25-40
kGy.
Example 5
[0155] A suspension to be administered by otic infusion for treatment and/or prevention
of canine otitis externa is prepared having the following composition:
| ceftiofur hydrochloride (micronized) |
25 mg/ml |
| Labrafil™ M-1980CS |
500 mg/ml |
| microcrystalline wax NF |
1.0 mg/ml |
| propyl gallate |
1.0 mg/ml |
| mineral oil |
q.s. |
[0156] The microcrystalline wax and approximately 27% of the total amount of the mineral
oil are heated to 85-98°C with mixing, in a kettle. The balance of the mineral oil
is heated to 85-98°C with mixing, in a manufacturing tank. After the microcrystalline
wax is completely melted, the microcrystalline wax/mineral oil mixture in the kettle
is transferred to the manufacturing tank containing mineral oil and mixed thoroughly.
The resulting mixture is cooled to 38-45°C and the Labrafil
™ M-1980CS is added to the manufacturing tank with mixing. The ceftiofur hydrochloride
is then added to the resulting vehicle and mixed to form a uniform suspension. The
suspension is screened and filled into 20 ml polypropylene containers.
Example 6
[0157] A suspension to be administered by intramammary infusion for treatment and/or prevention
of dry cow mastitis was prepared having the following composition:
| ceftiofur hydrochloride (micronized) |
50 mg/ml |
| Labrafil™ M-1944CS |
50 mg/ml |
| microcrystalline wax NF |
70 mg/ml |
| cottonseed oil NF |
q.s. |
[0158] The microcrystalline wax and approximately 27% of the total amount of the cottonseed
oil were heated to 85-98°C with mixing, in a kettle. The balance of the cottonseed
oil was heated to 85-98°C with mixing, in a manufacturing tank. After the microcrystalline
wax was completely melted the microcrystalline wax/cottonseed oil mixture in the kettle
was transferred to the manufacturing tank containing cottonseed oil and mixed thoroughly.
The resulting mixture was cooled to 38-45°C and the Labrafil
™ M-1944CS was added to the manufacturing tank with mixing. The ceftiofur hydrochloride
was then added to the resulting vehicle and mixed to form a uniform suspension. The
suspension was screened and filled into 12 ml high density polyethylene mastitis syringes.
The packaged product was terminally sterilized by gamma irradiation at a dose of 25-40
kGy.
Example 7
[0159] A suspension to be administered by intramammary infusion for treatment and/or prevention
of lactating cow mastitis is prepared having the following composition:
| ceftiofur sodium (micronized) |
20 mg/ml |
| Labrafil™ WL-2609BS |
75 mg/ml |
| microcrystalline wax NF |
100 mg/ml |
| Miglyol™ 812 |
q.s. |
[0160] The microcrystalline wax and approximately 30% of the total amount of the Miglyol
™ 812 are heated to 85-98°C with mixing, in a kettle. The balance of the Miglyol
™ 812 is heated to 85-98°C with mixing, in a manufacturing tank. After the microcrystalline
wax is completely melted the microcrystalline wax/Miglyol
™ 812 mixture in the kettle is transferred to the manufacturing tank containing the
Miglyol
™ 812 and mixed thoroughly. The resulting mixture is cooled to 38-45°C and the Labrafil
™ WL-2609BS is added to the manufacturing tank with mixing. The ceftiofur sodium is
added to the resulting vehicle and mixed to form a uniform suspension. The suspension
is screened and filled into 12 ml high density polyethylene mastitis syringes. The
packaged product is terminally sterilized by gamma irradiation at a dose of 25-40
kGy.
1. Pharmazeutische Zusammensetzung, umfassend ein Vehikel, das (a) ein amphipathisches
Öl, das Wasser-dispergierbar und Ethanol-unlöslich ist, (b) mikrokristallines Wachs
und (c) einen pharmazeutisch annehmbaren nicht-wässrigen Träger umfasst; wobei das
Vehikel eine antibakterielle Substanz in einer antibakteriell wirksamen Menge darin
stabil dispergiert aufweist.
2. Zusammensetzung nach Anspruch 1, wobei die antibakterielle Substanz ein Oxazolidinon
ist, ausgewählt aus der Gruppe, bestehend aus Eperezolid, Linezolid, N-((5S)-3-(3-Fluor-4-(4-(2-fluorethyl)-3-oxy-1-piperazinyl)phenyl-2-oxy-5-oxazolidinyl)methyl)acetamid,
(S)-N-((3-(5-(3-Pyridyl)thiophen-2-yl)-2-oxy-5-oxazolidinyl)methyl)acetamid und (S)-N-((3-(5-(4-Pyridyl)pyrid-2-yl)-2-oxy-5-oxazolidinyl)methyl)acetamid-Hydrochlorid.
3. Zusammensetzung nach Anspruch 1, wobei die antibakterielle Substanz ein Cephalosporin
ist, ausgewählt aus der Gruppe, bestehend aus Ceftiofur und Salzen davon, Cephalexin,
Cephradin, Cefquinom, Cephacetril, Cephalonium, Cefuroxim, Cefazidim, Cefoperazon,
Natriumcephemethcarboxylat, Cephem-Heptahydrat, Cephalosporin-Di- und Trihydrat, Cephadroxil-Monohydrat,
Cephazolinnatrium-Monohydrat, Cefiximin, Ceftaxim, Ceftizoxim, Ceftriaxon, o-Formylcefamandol,
Salzen von 3-Acetoxymethyl-7-(iminocetamido)-cephalosporansäurederivaten, dem Monohydrat
von 7-(D-α-Amino-α-(p-hydroxyphenyl)acetamino)-3-methyl-3-cephem-1-carbonsäure, dem
Hydrochloridsalz von syn-7-((2-Amino-1-thiazolyl)(methoxyimino)acetyl)amino)-3-methyl-3-cephem-4-carbonsäure,
kristallinen Cephem-Säureadditionssalzen, (Pivaloyloxy)methyl-7-beta-(2-(2-amino-4-thiazolyl)acetamido)-3-(((1-(2-(dimethylamino)ethyl)-1H-tetraazol-5-yl)thio)methyl)-3-cephem-4-carboxylat,
Cephalexin, Cephalexin-Monohydrat, 7-(D-2-Naphthyglycylamino)-3-methyl-3-cephem-4-carbonsäure-Tetrahydrat,
Tautomeren, Stereoisomeren, Enantiomeren, Salzen und Hydraten davon sowie Kombinationen
davon.
4. Zusammensetzung nach Anspruch 1, wobei die antibakterielle Substanz ausgewählt ist
aus der Gruppe, bestehend aus Ceftiofur und pharmazeutisch annehmbaren Salzen davon
sowie Kombinationen davon.
5. Zusammensetzung nach einem der voranstehenden Ansprüche, wobei das amphipathische
Öl ein polyglykolisiertes Glycerid ist, das durch eine Alkoholysereaktion natürlicher
Triglyceride mit Polyethylenglykolen hergestellt worden ist.
6. Zusammensetzung nach Anspruch 5, wobei das polyglykolisierte Glycerid eine Hauptfettsäurekomponente
aus Ölsäure oder Linolsäure umfasst.
7. Zusammensetzung nach einem der voranstehenden Ansprüche, wobei der nicht-wässrige
Träger ausgewählt ist aus der Gruppe, bestehend aus Pflanzenölen, Mineralölen, mittelkettigen
bis langkettigen Fettsäuren und Alkylestern davon, Propylenglykoldiestern mittelkettiger
bis langkettiger Fettsäuren, Mono-, Di- und Triglycerylestern von Fettsäuren, Polyethylenglykolen
und Kombinationen davon.
8. Zusammensetzung nach einem der voranstehenden Ansprüche, wobei das amphipathische
Öl 0,01% bis 99%, vorzugsweise 1% bis 80% und stärker bevorzugt 3% bis 25%, Gewicht/Volumen
der Zusammensetzung, ausmacht.
9. Zusammensetzung nach einem der voranstehenden Ansprüche, wobei das mikrokristalline
Wachs 0,01% bis 50%, vorzugsweise 1% bis 40% und stärker bevorzugt 3% bis 15%, Gewicht/Volumen
der Zusammensetzung, ausmacht.
10. Zusammensetzung nach einem der voranstehenden Ansprüche, wobei der nicht-wässrige
Träger 0,5% bis 99%, vorzugsweise 10% bis 95% und stärker bevorzugt 40% bis 90%, Gewicht/Volumen
der Zusammensetzung, ausmacht.
11. Erzeugnis, umfassend einen Behälter oder eine Abgabevorrichtung, der/die eine sauerstoffpermeable
Wand aufweist und eine Zusammensetzung nach einem der voranstehenden Ansprüche darin
enthalten aufweist.
12. Erzeugnis von Anspruch 11, wobei die Zusammensetzung eine verlängerte chemische und/oder
physikalische Stabilität verglichen mit einer ansonsten ähnlichen Referenzzusammensetzung,
der es an einem oder beiden aus dem amphipathischen Öl und dem mikrokristallinen Wachs
mangelt, zeigt.
13. Verwendung einer Zusammensetzung nach einem der Ansprüche 1 bis 11 für die Herstellung
eines Medikaments für die Behandlung oder Prävention einer bakteriellen Infektion
bei einem Subjekt durch Verabreichung der Zusammensetzung an ein Flüssigkeit-enthaltendes
Organ des Subjekts über eine natürliche äußere Öffnung des Organs, wobei sich die
Zusammensetzung nach der Verabreichung in der Flüssigkeit dispergiert.
14. Verwendung nach Anspruch 13, wobei die bakterielle Infektion in einem Euter eines
milcherzeugenden Tiers vorliegt und wobei die Verabreichung durch intramammäre Infusion
erfolgt.
15. Verwendung nach Anspruch 14, wobei die bakterielle Infektion als Mastitis manifestiert
ist.
16. Verwendung nach Anspruch 13, wobei die bakterielle Infektion in einem Ohr vorliegt
und wobei die Verabreichung durch Infusion oder Injektion in das Ohr erfolgt.
1. Composition pharmaceutique comprenant un véhicule qui comprend (a) une huile amphipathique
qui est dispersible dans l'eau et insoluble dans l'éthanol, (b) une cire microcristalline
et (c) un support non-aqueux pharmaceutiquement acceptable, ledit véhicule renfermant,
en dispersion stable, une substance antibactérienne en une quantité efficace sur un
plan antibactérien.
2. Composition selon la revendication 1, dans laquelle la substance antibactérienne est
une oxazolidinone sélectionnée dans le groupe consistant en l'épérézolide, le linézolide,
le N-((5S)-3-(3-fluoro-4-(4-(2-fluoroéthyl)-3-oxy-1-pipérazinyl)phényl-2-oxy-5-oxazolidinyl)méthyl)
acétamide, le (S)-N-((3-(5-(3-pyridyl)thiophén-2-yl)-2-oxy-5-oxazolidinyl)méthyl)acétamide
et le chlorhydrate de (S)-N-((3-(5-(4-pyridyl)pyrid-2-yl)-2-oxy-5-oxazolidinyl) méthyl)acétamide.
3. Composition selon la revendication 1, dans laquelle la substance antibactérienne est
une céphalosporine sélectionnée dans le groupe consistant en le ceftiofur et ses sels,
la céphalexine, la céphradine, la cefquinome, le céphacétrile, le céphalonium, le
céfuroxime, le céfazidime, la céfopérazone, le cépheméthcarboxylate de sodium, le
céphem heptahydraté, la céphalosporine di- et tri-hydratée, le céphadroxil monohydraté,
la céphazoline sodique monohydratée, la céfiximine, le ceftaxime, le ceftizoxime,
la ceftriaxone, l'o-formylcéfamandole, les sels des dérivés de l'acide 3-acétoxyméthyl-7-(iminocétamido)-céphalosporanique,
le monohydrate de l'acide 7-(D-α-amino-α-(p-hydroxyphényl)acétamino)-3-méthyl-3-céphem-1-carboxylique,
le chlorhydrate de l'acide syn-7-((2-amino-1-thiazolyl)(méthoxyimino)acétyl)-amino)-3-méthyl-3-céphem-4-carboxylique,
les sels d'addition acide cristallins du céphem, le 7-bêta-(2-(2-amino-4-thiazolyl)acétamido)-3-(((1-(2-(diméthylamino)éthyl)-1H-tétrazol-5-yl)thio)méthyl)-3-céphem-4-carboxylate
de (pivaloyloxy)méthyle, la céphalexine, la céphalexine monohydratée, l'acide 7-(D-2-naphtylglycylamino)-3-méthyl-3-céphem-4-carboxylique
tétrahydraté, les tautomères, stéréoisomères, énantiomères, sels et hydrates de ces
composés, et leurs combinaisons.
4. Composition selon la revendication 1, dans laquelle la substance antibactérienne est
sélectionnée dans le groupe consistant en le ceftiofur et les sels pharmaceutiquement
acceptables de ce composé, ainsi que leurs combinaisons.
5. Composition selon l'une quelconque des revendications précédentes, dans laquelle l'huile
amphipathique est un glycéride polyglycolisé préparé par une réaction d'alcoolyse
de triglycérides naturels avec des polyéthylène glycols.
6. Composition selon la revendication 5, dans laquelle le glycéride polyglycolisé comprend
un composant acide gras principal de l'acide oléique ou de l'acide linoléique.
7. Composition selon l'une quelconque des revendications précédentes, dans laquelle le
support non-aqueux est sélectionné dans le groupe consistant en les huiles végétales,
les huiles minérales, les acides gras à chaîne de moyenne à longue et leurs esters
d'alkyle, les diesters de propylène glycol d'acides gras à chaîne de moyenne à longue,
les esters de mono-, di- et triglycéryle d'acides gras, les polyéthylène glycols et
leurs combinaisons.
8. Composition selon l'une quelconque des revendications précédentes, dans laquelle l'huile
amphipathique constitue de 0,01 % à 99 %, de préférence de 1 % à 80 %, et mieux de
3 % à 25 % en poids/volume de la composition.
9. Composition selon l'une quelconque des revendications précédentes, dans laquelle la
cire microcristalline constitue de 0,01 % à 50 %, de préférence de 1 % à 40 %, et
mieux de 3 % à 15 % en poids/volume de la composition.
10. Composition selon l'une quelconque des revendications précédentes, dans laquelle le
support non-aqueux représente de 0,5 % à 99 %, de préférence de 10 % à 95 %, et mieux
de 40 % à 90 % en poids/volume de la composition.
11. Article manufacturé comprenant un récipient ou un dispositif distributeur ayant une
paroi perméable à l'oxygène et renfermant une composition selon l'une quelconque des
revendications précédentes.
12. Article selon la revendication 11, dans lequel la composition manifeste une stabilité
chimique et/ou physique prolongée par comparaison avec une autre composition de référence
sinon similaire, dépourvue de l'huile amphipathique ou de la cire microcristalline,
ou des deux.
13. Utilisation d'une composition selon l'une quelconque des revendications 1 à 11 pour
la fabrication d'un médicament pour le traitement ou la prévention d'une infection
bactérienne chez un sujet, par administration de la composition à un organe contenant
un fluide et appartenant au sujet, via un orifice extérieur naturel de l'organe, ladite
composition administrée se dispersant dans ledit fluide.
14. Utilisation selon la revendication 13, dans laquelle ladite infection bactérienne
est présente dans le pis d'un animal producteur de lait et dans laquelle ladite administration
se fait par perfusion intramammaire.
15. Utilisation selon la revendication 14, dans laquelle ladite infection bactérienne
se manifeste par une mastite.
16. Utilisation selon la revendication 13, dans laquelle ladite infection bactérienne
est présente dans une oreille et ladite administration se fait par perfusion ou injection
otique.